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On extended version of Yamada–Ota and Xue models in micropolar fluid flow under the region of stagnation point

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  • Abbas, Nadeem
  • Nadeem, S.
  • Malik, M.Y.

Abstract

In this study, a steady flow of micropolar hybrid nanofluid over permeable curved exponentially stretching channel surface has been analyzed. We also discussed the two models of hybrid nanofluid named as Yamada and Ota model and Xue model. The systems of governing partial differential equations are converted into a system of non dimensional ordinary differential equations by applying the suitable similarity transformation. The dimensionless form of the ordinary differential equations is solved through numerical technique via bvp4c method. The impacts of physical parameters which involve in ordinary differential equations are highlighted through graphs while skin friction, couple stress and Nusselt numbers are highlighted through Tables. Our interest of study is to be analyzed about the heat transfer rate of micropolar hybrid nanofluid with hybrid nanofluid of Y–O model and Xue model. The comparison with the existence literature has been worked and it is revealed to be good agreement. Surprisingly, the Yamada and Ota model of the Hybrid nanofluid gain high than Xue model of the hybrid nanofluid on the temperature profile. In the both cases, the injection parameter (γ>0) gains higher thermal boundary layer thickness than that of suction parameter (γ<0). It is noted that the Res1∕2Cf having opposite behavior to note for the Res1∕2Nus and Res1∕2Cm for the both cases of Cu−Al2O3∕H2O and Cu∕H2O. The present analysis gives a good agreement with the decay.

Suggested Citation

  • Abbas, Nadeem & Nadeem, S. & Malik, M.Y., 2020. "On extended version of Yamada–Ota and Xue models in micropolar fluid flow under the region of stagnation point," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 542(C).
  • Handle: RePEc:eee:phsmap:v:542:y:2020:i:c:s0378437119319594
    DOI: 10.1016/j.physa.2019.123512
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    References listed on IDEAS

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    1. Sivasankaran, S. & Alsabery, A.I. & Hashim, I., 2018. "Internal heat generation effect on transient natural convection in a nanofluid-saturated local thermal non-equilibrium porous inclined cavity," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 509(C), pages 275-293.
    2. Sheikholeslami, M. & Jafaryar, M. & Shafee, Ahmad & Li, Zhixiong, 2019. "Simulation of nanoparticles application for expediting melting of PCM inside a finned enclosure," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 523(C), pages 544-556.
    3. Safaei, Mohammad Reza & Hajizadeh, Ahmad & Afrand, Masoud & Qi, Cong & Yarmand, Hooman & Zulkifli, Nurin Wahidah Binti Mohd, 2019. "Evaluating the effect of temperature and concentration on the thermal conductivity of ZnO-TiO2/EG hybrid nanofluid using artificial neural network and curve fitting on experimental data," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 519(C), pages 209-216.
    4. Hajmohammadi, M.R. & Haji Molla Ali Tork, M.H., 2019. "Effects of the magnetic field on the cylindrical Couette flow and heat transfer of a nanofluid," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 523(C), pages 234-245.
    5. Farooq, A.A. & Tripathi, D. & Elnaqeeb, Thanaa, 2019. "On the propulsion of micropolar fluid inside a channel due to ciliary induced metachronal wave," Applied Mathematics and Computation, Elsevier, vol. 347(C), pages 225-235.
    6. Sarkar, Jahar & Ghosh, Pradyumna & Adil, Arjumand, 2015. "A review on hybrid nanofluids: Recent research, development and applications," Renewable and Sustainable Energy Reviews, Elsevier, vol. 43(C), pages 164-177.
    7. Behrouz Takabi & Hossein Shokouhmand, 2015. "Effects ofAl2O3–Cu/water hybrid nanofluid on heat transfer and flow characteristics in turbulent regime," International Journal of Modern Physics C (IJMPC), World Scientific Publishing Co. Pte. Ltd., vol. 26(04), pages 1-25.
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